US8632915B2 - Nanocomposite protective coatings for battery anodes - Google Patents
Nanocomposite protective coatings for battery anodes Download PDFInfo
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- US8632915B2 US8632915B2 US13/088,652 US201113088652A US8632915B2 US 8632915 B2 US8632915 B2 US 8632915B2 US 201113088652 A US201113088652 A US 201113088652A US 8632915 B2 US8632915 B2 US 8632915B2
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- 239000011253 protective coating Substances 0.000 title claims abstract description 23
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Images
Classifications
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/62—Selection of inactive substances as ingredients for active masses, e.g. binders, fillers
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/13—Electrodes for accumulators with non-aqueous electrolyte, e.g. for lithium-accumulators; Processes of manufacture thereof
- H01M4/134—Electrodes based on metals, Si or alloys
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/13—Electrodes for accumulators with non-aqueous electrolyte, e.g. for lithium-accumulators; Processes of manufacture thereof
- H01M4/139—Processes of manufacture
- H01M4/1395—Processes of manufacture of electrodes based on metals, Si or alloys
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/362—Composites
- H01M4/364—Composites as mixtures
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/362—Composites
- H01M4/366—Composites as layered products
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/052—Li-accumulators
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/38—Selection of substances as active materials, active masses, active liquids of elements or alloys
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/10—Energy storage using batteries
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T29/00—Metal working
- Y10T29/49—Method of mechanical manufacture
- Y10T29/49002—Electrical device making
- Y10T29/49108—Electric battery cell making
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T29/00—Metal working
- Y10T29/49—Method of mechanical manufacture
- Y10T29/49002—Electrical device making
- Y10T29/49108—Electric battery cell making
- Y10T29/49115—Electric battery cell making including coating or impregnating
Definitions
- Rechargeable batteries comprising metal anodes including, but not limited to, lithium, sodium, and zinc, can be crucial to the development and deployment of many electronic devices, electric vehicles, and other systems requiring energy storage.
- metal anodes including, but not limited to, lithium, sodium, and zinc
- one disadvantage of these rechargeable batteries is the development of surface defects over several charge/discharge cycles.
- dendrite formation can cause malfunctions such as a short circuiting and/or overheating. Therefore, a need exists for battery anodes having modified surfaces that are not susceptible to the formation of malfunction-inducing surface defects.
- the present invention relates to modified surfaces on metal anodes for batteries and to methods for performing such modifications.
- the modification can include application of a protective coating comprising a nanocomposite that can inhibit formation of surface defects on the anode during charge/discharge cycles.
- the protective coating is characterized by products of chemical or electrochemical dissociation of a nanocomposite containing a polymer and an exfoliated compound (M a ′M b ′′X c ).
- the metal, M′ comprises Li, Na, or Zn.
- the exfoliated compound comprises M′ among lamella of M b ′′X c , wherein M′′ is Fe, Mo, Ta, W, or V, and X is S, O, or Se.
- the nanocomposite can comprise a substantially disordered arrangement of M b ′′X c lamella.
- the nanocomposite can comprise a substantially layered arrangement of M b ′′X c lamella.
- the products of the chemical or electrochemical dissocation of the nanocomposite can comprise at least one of M r ′X s , M′′/M t ′, M u ′′, and X v in a matrix of the polymer.
- the polymer can form a matrix in which the dissociation products are distributed.
- M′′/M t ′ composite can refer to a chemical interaction between M′ and M′′.
- the M′ can be accommodated within defect sites of the M′′.
- the polymer further comprises graphene.
- the polymer comprises polyether functionality.
- polyether functionality refers to compounds containing more than one ether (C—O—C) group.
- Polyether generally refers to polymers which contain the ether functional group in their main chain.
- glycol is reserved for low to medium range molar mass polymers when the nature of the end-group, which is usually a hydroxyl group, still has a substantial effect on the behavior of the polymer.
- oxide or other terms are used for high molar mass polymers where the end-groups no longer affect polymer properties.
- a polymer having polyether functionality includes, but is not limited to, polyethylene oxide (PEO).
- a preferred embodiment of the present invention comprises a battery having an anode comprising Li and a protective coating over the anode.
- the protective coating is characterized by products of anodic reduction of a nanocomposite containing a polymer and an exfoliated intercalation compound (Li a MoS 2 ) comprising Li among lamella of MoS 2 , the products of anodic reduction comprising at least one of Li 2 S, S 8 , Mo, Li/Mo, and polysuflide in a matrix of the polymer.
- the polymer can further comprise graphene, in some instances.
- Modification of the metal anode (M′), which comprises Li, Na, or Zn can involve application of a protective coating.
- the method of preparing the protective coating on the battery anode comprises exfoliating an intercalation compound (M a ′M b ′′X c ) in a solution.
- the exfoliation yields a colloid comprising substantially separated lamella of M b ′′X c ; wherein M′′ is Fe, Mo, Ta, W, or V, and X is S, O, or Se.
- the method further comprises absorbing a polymer to the lamella of M b ′′X c in the colloid and then forming a nanocomposite by drying the colloid.
- the nanocomposite comprises the polymer and M′ among lamella of M b ′′X c .
- the lamella can be substantially layered or they can be substantially disordered in arrangement.
- the nanocomposite is applied to the anode.
- One way to perform the application can involve contacting the anode and the polymer/colloid mixture prior to drying.
- the nanocomposite is then chemically or electrochemically dissociated to yield a product comprising at least one of M r ′X s , M′′/M t ′, M u ′′, and X v in a matrix of the polymer.
- the method can further comprise reacting X y with dendrites comprising M′ formed on surfaces of the anode.
- the polymer comprises polyether functionality.
- a polymer includes, but is not limited to, PEO.
- the colloid further comprises graphene.
- M′ is Li
- M a ′M b ′′X c is Li a MoS 2
- M b ′′X c is MoS 2
- M r ′X s is Li 2 S
- M′′/M t ′ is Mo/Li t
- M u ′′ is Mo u
- X v is S 8 or polysulfide.
- FIG. 1 includes X-ray diffraction (XRD) patterns comparing different MoS 2 /PEO nanocomposites with and without graphene according to embodiments of the present invention.
- XRD X-ray diffraction
- FIG. 2 is a graph showing cyclic voltammetry data for a MoS 2 /PEO/graphene nanocomposite according to embodiments of the present invention.
- the scan rate was 0.1 mV/s.
- FIGS. 3 a - 3 c depict the electrochemical performance of a MoS 2 /PEO/graphene nanocomposite a) voltage profiles, b) cycling ability of MoS 2 /PEO/graphene, and c) Nyquist plots of pure exfoliated MoS 2 before and after cycles.
- the cells are cycled at 50 mA/g between 0.01 V and 3.0 V. The capacity is based on the weight of the whole composite.
- FIG. 4 depicts the voltage dependence of the lithiation of a MoS 2 /PEO nanocomposite as a function of cycle number.
- FIG. 5 compares XRD patterns of MoS 2 /PEO electrodes at different depths of discharge and states of charge.
- FIG. 6 a - 6 e includes a) TEM images of as-prepared MoS 2 /PEO/graphene nanocomposite, b) SAED pattern of MoS 2 in as-prepared MoS 2 /PEO/graphene nanocomposite, c) TEM image of discharged MoS 2 /PEO/graphene electrode, d) SAED pattern of discharged MoS 2 /PEO/graphene electrode, and e) TEM images of recharged MoS 2 /PEO/graphene nanocomposite.
- FIG. 7 compares rate capabilities for pure exfoliated MoS 2 , MoS 2 /PEO, and MoS 2 /PEO/graphene nanocomposites.
- Embodiments of the present invention include modified battery anodes that are resistant to formation of surface defects that can cause poor battery performance and/or malfunction.
- the modification can be a protective coating comprising the products from chemical or electrochemical dissociation of a nanocomposite containing a polymer and an exfoliated intercalation compound, (M a ′M b ′′X c ), wherein M′ is Li, Na, or Zn, M′′ is Fe, Mo, Ta, W, or V, and X is S, O, or Se.
- FIGS. 1-7 show a variety of aspects and embodiments of the present invention through a particular example of a nanocomposite comprising lithium, poly(ethylene oxide) (PEO), molybdenum disulfide, and optionally graphene.
- the figures refer to the nanocomposite material properties and to entire anodes comprising the nanocomposite material.
- the nanocomposite electrochemically dissociates irreversibly into the dissociation products, Li 2 S and Mo.
- the Li 2 S and Mo are then able to continuously cycle according to the following reaction.
- the S which can exist as soluble polysulfide, has an affinity for Li and can consume surface defects such as Li dendrites when present as a protective coating on a Li anode.
- the nanocomposite was prepared by exfoliation of a lithiated MoS 2 to form a colloid followed by adsorption of the PEO polymer into the separated lamella. Exfoliation of MoS 2 into single sheets was achieved through the rapid hydrolysis and sonication of Li x MoS 2 . 10 mg PEO was dissolved in 20 ml deionized water and then poured into the Li x MoS 2 quickly and sonicated for 2 hours. The dispersion was then separated by centrifugation. Without washing, the nanocomposite was dried at 80° C. overnight. The weight ratio of MoS 2 :PEO:graphene was maintained at 93:2:5, respectively. As a control, the exfoliated MoS 2 without any PEO was also prepared. Details regarding preparation of the lithiated MoS 2 are described by Lemmon et al. ( Chem. Mater. 1994, 6, 207), which details are incorporated herein by reference.
- electrodes were prepared by casting a slurry of the MoS 2 /PEO composite, conductive carbon black, and poly(vinylidene fluoride) (PVDF) in N-methyl pyrrolidone (NMP) solvent onto a copper foil. After drying, the electrodes were punched into 1.4 cm ⁇ disks. The typical loading of the active materials in the electrode is 1-5 mg/cm 2 .
- Lithium metal was, used as an anode in a type 2325 coin-cell system assembled in an argon-filled glove box.
- the electrolyte consisted of 1M LiPF 6 in a mixture of ethylene methyl carbonate (EMC) and ethylene carbonate (EC) at a 7:3 volume ratio.
- EMC ethylene methyl carbonate
- EC ethylene carbonate
- the interference from graphene during the exfoliation process may decrease the amount of PEO molecules finally absorbed on the single layer of MoS 2 , or the graphene may be absorbed and subsequently trapped between the MoS 2 layers upon restacking as indicated by the decrease in (001) reflection.
- Graphene also is clearly shown in FIG. 1 for the MoS 2 —PG composite. The peak at ⁇ 26° can be attributed to the layer-to-layer distance of the graphene sheets; however, there is no solid evidence to confirm that the graphene is between the MoS 2 layers, as the case for PEO, or on the surface of the MoS 2 .
- the electrochemical properties of the MoS 2 —PG composite were investigated by cyclic voltammetry in FIG. 2 .
- the sharp peak at 1.14 V in the first cathodic scanning can be attributed to the insertion of Li + ions into MoS 2 layers, thus forming LiMoS 2 .
- the discharge capacity (see FIG. 3 ) corresponding to the cut-off voltage at 1.0 V is ⁇ 180 mAh/g, which is consistent with the theoretical discharge capacity of MoS 2 (i.e., 167 mAh/g) assuming only one mole of Li + is intercalated.
- a broad shoulder starts to evolve from 0.79 V.
- This feature corresponds to the insertion of additional Li + ions within the expanded MoS 2 structure or in the defect sites of MoS 2 .
- the distinct reduction peak at 0.57 V is considered to reflect the deposition of Mo metal along with the Li 2 S.
- the first cycle efficiency of MoS 2 —PG composite is only 74% in FIG. 3 a with an irreversible capacity of around 200 mAh/g. This is mainly due to the electrolyte decomposition in the first discharge process.
- the small plateau at ⁇ 1.2 V during the first discharge reflects the formation of the solid electrolyte interface (SEI) film and contributes to the irreversible capacity thus lowering the efficiency in the first cycle.
- Excellent cycling performance is achieved as shown in FIG. 3 b .
- a continuous capacity increase is observed during subsequent cycling.
- the reversible capacity even approaches the initial discharge capacity of more than 1000 mAh/g after 180 cycles and is also shown in FIG. 4 as the amount of lithium increase for the later cycles. This observation is repeatable.
- Morphology changes of the MoS 2 electrode, HRTEM images and selected-area electron diffraction (SAED) patterns for the fresh, discharged, and charged electrodes are compared in FIG. 6 .
- the large plate-shaped MoS 2 grains are evident in FIG. 6 a .
- the clearly separated layers are similar with that of the MoS 2 /PEO composite that was reported elsewhere.
- the PEO and graphene can be seen on the surface of the large MoS 2 plates.
- the SAED pattern in FIG. 6 b also shows that the MoS 2 in the fresh electrode is well crystallized. However, after discharging to 0.01 V, the morphology completely changes. As shown in FIG. 6 c , small round particles are distributed in the PEO matrix with graphene still visible on the edges.
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Abstract
Description
(discharging) Li2S+Mo/Lix S+Mo+Lix+2(charging) (1)
The S, which can exist as soluble polysulfide, has an affinity for Li and can consume surface defects such as Li dendrites when present as a protective coating on a Li anode.
MoS2 +xLi+ +xe −=LixMoS2(x=3-4) (2)
LixMoS2+4Li++4e −=2Li2S+Mo/Liy (3)
In bulk form, the solubility of Li is very low in Mo, and no alloys are formed. However, the reversible cycling results indicate that Mo can accommodate a large amount of Li+ ions, especially when surface PEO exists. This is described in further detail elsewhere herein based on voltage profiles of MoS2—PG. During anodic scanning, Li+ ions associated with Mo reduction are initially removed at 1.66 V. Only one peak at 2.3 V is observed, corresponding to the oxidation of Li2S into sulfur (S). Therefore, after the first cycle, the electrode can be regarded as a mixture of S and Mo instead of the original MoS2. Accordingly, the reduction peak at ˜2.0 V is indicative of the formation of Li2S. Further investigation reveals that the reduction peak at 2.1 V splits into two parts occurring at 2.11 V and 2.0V, respectively, which agrees well with the kinetics of the conversion from element S8 to polysulfides and then to Li2S. Note that the transition between the as-formed Li2S and S is influenced by the presence of Mo, which can modify the chemistry based on the S alone (see
Claims (18)
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| PCT/US2011/032963 WO2011139543A2 (en) | 2010-04-26 | 2011-04-19 | Nanocomposite protective coatings for battery anodes |
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| US9166222B2 (en) * | 2010-11-02 | 2015-10-20 | Envia Systems, Inc. | Lithium ion batteries with supplemental lithium |
| CN104136660A (en) * | 2012-01-05 | 2014-11-05 | 巴伊材料公司 | Electrochemical methods and products |
| CN103296279B (en) * | 2012-02-24 | 2016-02-10 | 海洋王照明科技股份有限公司 | Graphene derivative-lithium salt, its preparation method, anode electrode and ultracapacitor |
| CN103427125B (en) * | 2012-05-15 | 2016-04-13 | 清华大学 | The round-robin method of sulfenyl polymer Li-ion battery |
| WO2014164494A1 (en) * | 2013-03-11 | 2014-10-09 | Board Of Regents, The University Of Texas System | Sulfur-hydroxylated graphene nanocomposites for rechargeable lithium-sulfur batteries and methods of making the same |
| US9725331B2 (en) * | 2013-05-10 | 2017-08-08 | University Of Houston System | Non-lithium metal ion battery electrode material architecture |
| US20160181596A1 (en) | 2013-08-05 | 2016-06-23 | Kansas State University Research Foundation | ROBUST MoS2/GRAPHENE COMPOSITE ELECTRODES FOR NA+ BATTERY APPLICATIONS |
| CN104166790A (en) * | 2014-07-24 | 2014-11-26 | 广东电网公司电力科学研究院 | Lithium-ion battery performance evaluation method based on TOPSIS theory |
| CN109565037B (en) * | 2016-07-18 | 2022-03-08 | 宁德时代新能源科技股份有限公司 | Sodium ion battery pole piece, preparation method thereof and sodium ion battery containing pole piece |
| CN110985591A (en) * | 2019-12-17 | 2020-04-10 | 南京师范大学 | Controllable magnetorheological elastomer suspension system for power battery pack |
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